Predicting the Structure of MoS <sub>3</sub> and Designing Transition-Metal-Doped Catalysts for Efficient CO <sub>2</sub> Electroreduction
Прогноз структуры MoS3 и проектирование легированных переходными металлами катализаторов для эффективного электровосстановления CO2
2026-05-07
SCID: 54.1/84rkk7rh
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CBD-GM crystal structure predictionCO2 electroreductionMoS3 monolayersingle-atom catalyststransition-metal doping
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Abstract (AI)
The development of efficient and highly selective catalysts for the electrochemical CO2 reduction reaction (CO2RR) is crucial for achieving carbon neutrality and sustainable energy cycles. In this study, the stable structure of the MoS3 monolayer was determined using the crystal structure prediction software CBD-GM. Owing to its distinct sulfur coordination environments and large dipole moment, MoS3 serves as an ideal support for single-atom catalysts. By doping transition metals at specific sulfur sites (S1–S3), we systematically screened a series of single-atom configurations for CO2 activation. The results demonstrate that CO2 molecules are effectively activated when Sc, Mn, Fe, Co, and Ni single atoms are doped at the S2 site. Remarkably, CoS2@MoS3 and NiS2@MoS3 are demonstrated as highly effective catalysts for selective CO2-to-CH4 conversion, with low limiting potentials of −0.17 and −0.49 V, respectively. This study provides theoretical insights into the rational design of MoS3-based single-atom systems for efficient and selective CO2 electroreduction.
Key Findings
1
CO2 molecules are effectively activated when Sc, Mn, Fe, Co, and Ni single atoms are doped at the S2 site of MoS3.
2
CoS2@MoS3 and NiS2@MoS3 enable selective CO2-to-CH4 conversion with low limiting potentials of −0.17 V and −0.49 V, respectively.
3
MoS3 exhibits distinct sulfur coordination environments and a large dipole moment, making it a promising support for single-atom catalysts.
4
Systematic doping of transition metals at S1–S3 sulfur sites identified configurations for effective CO2 activation.
5
The stable structure of a MoS3 monolayer was predicted using the crystal structure prediction software CBD-GM.
6
The study provides theoretical design principles for MoS3-based single-atom systems for efficient and selective CO2 electroreduction.
Research Object
MoS3 monolayer as a support for transition-metal single-atom dopants (e.g., CoS2@MoS3, NiS2@MoS3)
Research Subject
Prediction of MoS3 monolayer structure and evaluation of transition-metal single-atom doping at specific sulfur sites (S1–S3) for CO2 activation and selective electrochemical CO2-to-CH4 conversion (catalytic activity, selectivity, and limiting potentials)
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2026-05-07
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